Keyword search (4,163 papers available)

"DeWolf C" Authored Publications:

Title Authors PubMed ID
1 Enhancing X-ray Activated Photodynamic Therapy with Supported Lipid Bilayer-Coated Radioluminescent Nanoparticles Bondon N; Mandl GA; Mena-Giraldo P; Ferron Z; Sadeghipour N; DeWolf C; Capobianco JA; 41059546
CNSR
2 Elucidating the toxicity of methyl parathion, imazapic, isoxaflutole, and chlorantraniliprole on human hepatocarcinoma cells and bioinspired membranes Dos Santos DM; Rubira RJG; Salzedas GP; Kobal MB; Moreira LG; Toledo KA; Aoki PHB; DeWolf C; Camacho SA; 40020292
CONCORDIA
3 Understanding the Retention of Vaping Additives in the Lungs: Model Lung Surfactant Membrane Perturbation by Vitamin E and Vitamin E Acetate Taktikakis P; Côté M; Subramaniam N; Kroeger K; Youssef H; Badia A; DeWolf C; 38437623
CHEMBIOCHEM
4 Impact of Pollutant Ozone on the Biophysical Properties of Tear Film Lipid Layer Model Membranes Keramatnejad M; DeWolf C; 36837668
CHEMBIOCHEM
5 A biophysical study of tear film lipid layer model membranes Keramatnejad M; DeWolf C; 36535341
CNSR
6 Opposites Attract: Electrostatically Driven Loading of Antimicrobial Peptides into Phytoglycogen Nanocarriers Ali DA; Domínguez Mercado L; Findlay BL; Badia A; DeWolf C; 36525622
CHEMBIOCHEM
7 Mechanisms of hypericin incorporation to explain the photooxidation outcomes in phospholipid biomembrane models Pereira LSA; Camacho SA; Almeida AM; Gonçalves RS; Caetano W; DeWolf C; Aoki PHB; 35167859
CNSR
8 Are Plant-Based Carbohydrate Nanoparticles Safe for Inhalation? Investigating Their Interactions with the Pulmonary Surfactant Using Langmuir Monolayers Gravel-Tatta L; DeWolf C; Badia A; 34644076
CHEMBIOCHEM
9 Thermal properties of lipid bilayers derived from the transient heating regime of upconverting nanoparticles Bastos ARN; Brites CDS; Rojas-Gutierrez PA; Ferreira RAS; Longo RL; DeWolf C; Capobianco JA; Carlos LD; 33283824
CNSR
10 Strong Headgroup Interactions Drive Highly Directional Growth and Unusual Phase Co-Existence in Self-Assembled Phenolic Films. Miclette Lamarche R, DeWolf C 31710200
CNSR
11 Structural organization and phase behaviour of meta-substituted dioctadecylaminobenzoquinones at the air/water interface. Behyan S, Gritzalis D, Schmidt R, Kebede E, Cuccia LA, DeWolf C 30657501
CNSR

 

Title:Mechanisms of hypericin incorporation to explain the photooxidation outcomes in phospholipid biomembrane models
Authors:Pereira LSACamacho SAAlmeida AMGonçalves RSCaetano WDeWolf CAoki PHB
Link:https://pubmed.ncbi.nlm.nih.gov/35167859/
DOI:10.1016/j.chemphyslip.2022.105181
Publication:Chemistry and physics of lipids
Keywords:Hypercin incorporationPhospholipid biomembrane modelsPhotodynamic therapyPhotooxidation
PMID:35167859 Category: Date Added:2022-02-16
Dept Affiliation: CNSR
1 São Paulo State University (UNESP), School of Sciences, Humanities and Languages, Assis, SP, 19806-900, Brazil; Department of Chemistry and Biochemistry and Centre for NanoScience Research, Concordia University, Montreal, Canada.
2 São Paulo State University (UNESP), School of Sciences, Humanities and Languages, Assis, SP, 19806-900, Brazil; São Carlos Institute of Physics, University of São Paulo (USP), CP 369, São Carlos, SP, 13566-590, Brazil.
3 São Paulo State University (UNESP), School of Sciences, Humanities and Languages, Assis, SP, 19806-900, Brazil.
4 Department of Chemistry, State University of Maringá, Maringá, PR, Brazil.
5 Department of Chemistry and Biochemistry and Centre for NanoScience Research, Concordia University, Montreal, Canada.
6 São Paulo State University (UNESP), School of Sciences, Humanities and Languages, Assis, SP, 19806-900, Brazil. Electronic address: pedro.aoki@unesp

Description:

Cell membranes are the first barriers for drug binding and key for the action of photosensitizers (PS). Herein, we report on the incorporation of the PS hypericin into Langmuir monolayers of 1,2-dipalmitoyl-sn-glycero-3-phosphocholine (DPPC), 1,2-dioleoyl-sn-glycero-3-phosphocholine (DOPC) and 1,2-dioleoyl-sn-glycero-3-phospho-L-serine (DOPS), to represent eukaryotic cell membranes, and 1,2-dioleoyl-sn-glycero-3-phospho(1'-rac-glycerol) (DOPG), mimic bacterial membranes. Surface pressure (p) vs mean molecular area (A) isotherms showed a high degree of interaction (binding, penetration and relative solubilization) of hypericin into DPPC and DOPC monolayers. On the other hand, electrostatic repulsions govern the interactions with DOPG and DOPS, favoring hypericin self-aggregation, as visualized by Brewster angle microscopy (BAM). Indeed, the larger domains in BAM were consistent with the greater expansion of DOPG monolayers with incorporated hypericin, owing to stronger electrostatic repulsions. In contrast to DPPC, light-irradiation of DOPC monolayers containing hypericin induced loss of material due to hydrocarbon chain cleavage triggered by contact-dependent reactions between excited states of hypericin and chain unsaturations. The mild effects noted for both irradiated DOPS and DOPG monolayers are attributed to hypericin self-aggregation, which may have decreased the singlet oxygen quantum yield (F1O2) via self-quenching, despite the increased instability induced in the monolayers.





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